Messenger RNA molecules have been localized to different positions in cells and have been followed by time-lapse microscopy. We have used MS2-mVenus–labeled mRNA and single-particle tracking to obtain information on the dynamics of single-mRNA molecules in real time. Using single-molecule tracking, we show that several mRNA molecules visualized via two MS2-binding sites and MS2-mVenus expressed in Bacillus subtilis cells show free diffusion through the entire cell and constrained motion predominantly close to the cell membrane and at the polar regions of the cells. Because constrained motion of mRNAs likely reflects molecules complexed with ribosomes, our data support the idea that translation occurs at sites surrounding the nucleoids. Squa...
Unlike most macromolecules that are homogeneously distributed in the bacterial cell, mRNAs that enco...
Recent direct observations of localization of mRNAs and proteins both in prokaryotic and eukaryotic ...
AbstractThe cytoplasm of Escherichia coli is a crowded, heterogeneous environment. From single cell ...
In this work, single-molecule tracking, in combination with SMTracker software, is the main microsco...
AbstractCytoplasmic mRNA movements ultimately determine the spatial distribution of protein synthesi...
Single-particle tracking is a technique that allows for quantitative analysis of the localization an...
Transfer RNA (tRNA) links messenger RNA nucleotide sequence with amino acid sequence during protein ...
ABSTRACT Metabolic turnover of mRNA is fundamental to the control of gene expression in all organism...
AbstractIt has been proposed that forces resulting from the physical exclusion of macromolecules fro...
All living organisms must degrade mRNA to adapt gene expression to changing environments. In bacteri...
AbstractIn vivo measurements of the mobility and binding kinetics of cellular components are essenti...
Metelev et al. use single-molecule tracking to study kinetics of translation directly in E. coli cel...
Messenger RNA localization is important for cell motility by local protein translation. However, whi...
AbstractProteins of all living organisms must reach their subcellular destination to sustain the cel...
Abstract Background Knowledge on the localization and mobility of enzymes inside bacterial cells is ...
Unlike most macromolecules that are homogeneously distributed in the bacterial cell, mRNAs that enco...
Recent direct observations of localization of mRNAs and proteins both in prokaryotic and eukaryotic ...
AbstractThe cytoplasm of Escherichia coli is a crowded, heterogeneous environment. From single cell ...
In this work, single-molecule tracking, in combination with SMTracker software, is the main microsco...
AbstractCytoplasmic mRNA movements ultimately determine the spatial distribution of protein synthesi...
Single-particle tracking is a technique that allows for quantitative analysis of the localization an...
Transfer RNA (tRNA) links messenger RNA nucleotide sequence with amino acid sequence during protein ...
ABSTRACT Metabolic turnover of mRNA is fundamental to the control of gene expression in all organism...
AbstractIt has been proposed that forces resulting from the physical exclusion of macromolecules fro...
All living organisms must degrade mRNA to adapt gene expression to changing environments. In bacteri...
AbstractIn vivo measurements of the mobility and binding kinetics of cellular components are essenti...
Metelev et al. use single-molecule tracking to study kinetics of translation directly in E. coli cel...
Messenger RNA localization is important for cell motility by local protein translation. However, whi...
AbstractProteins of all living organisms must reach their subcellular destination to sustain the cel...
Abstract Background Knowledge on the localization and mobility of enzymes inside bacterial cells is ...
Unlike most macromolecules that are homogeneously distributed in the bacterial cell, mRNAs that enco...
Recent direct observations of localization of mRNAs and proteins both in prokaryotic and eukaryotic ...
AbstractThe cytoplasm of Escherichia coli is a crowded, heterogeneous environment. From single cell ...